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Proteoform plasticity modulates the temperature response in circadian timekeeping

Created on 10 Sep 2026

Authors

Pelham, J. F., Keeley, A. T., Usher, E. T., Martinsen, J. H., Jankowski, M. S., Moses, D., Mosier, A. E., Thomas, J., Buckley, N. D., Kragelund, B. B., Sukenik, S., Holehouse, A. S., Hurley, J. M.

Abstract

The molecular circadian clock optimally coordinates an organism's physiology with the light/dark cycle. One commonality among circadian molecular clock proteins is that they undergo alternative splicing, yielding multiple proteoforms. The isoform-specific sequences spliced into clock proteins contain intrinsically disordered regions (IDRs), suggesting that these regions might be intricately involved in cellular regulation. However, the functions of these isoform-specific IDRs in the clock remain poorly defined. Here, we use the core clock repressor FREQUENCY (FRQ) from the fungal circadian model system Neurospora crassa to test the hypothesis that alternative splicing of core clock IDRs yields multiple proteoforms that expand the functional regulatory capacity of FRQ. To do so, we biophysically characterized an IDR specific to the long isoform of the core clock repressor FRQ and identified motifs and molecular behaviors that regulate clock robustness in a temperature-dependent manner. We further compared the interactomes of two FRQ isoforms, identifying distinct functions and interacting proteins that could contribute to temperature regulation. Taken together, our data highlight that isoform-specific IDRs in clock-repressor proteins enhance and expand clock function in a context-dependent manner.

Preprint server: bioRxiv
The authors list and abstract were imported from bioRxiv on 10 Sep 2026.

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